Ti2AlC is a typical MAX (M: early transition metal, A: main group element, and X: carbon and/or nitrogen) phase with ceramic and metallic properties due to its unique nano-layered structure. In order to investigate the interaction behavior between Ag and Ti2AlC, a sessile drop experiment was conducted at 1080 °C for 5 min. The atomic rearrangement occurred at the Ag–Ti2AlC interface was revealed using high-angle annular dark-field scanning transmission electron microscopy coupled with high-resolution transmission electron microscopy analysis. The results show that Ag nanoclusters generally appeared in most of the Ag–Ti2AlC interaction regions thermally processed at 1080 °C. In addition, Ag can also substitute for Al and Ti atoms in the Ti2A...
The structural transitions of Ti3AlC2 induced by ion irradiation were investigated over a wide fluen...
The inherently nanolaminated Ti3AlC2 is one of the most studied MAX-phase materials. MAX-phases cons...
The inherently nanolaminated Ti3AlC2 is one of the most studied MAX-phase materials. MAX-phases cons...
The present work introduced first-principles calculation to explore the substitution behavior of Ag ...
The present work introduced first-principles calculation to explore the substitution behavior of Ag ...
nhu my orm 6 D diff ase imaging reveals that the stacking sequence of Ti and Al atoms along the [000...
As one of the MAX phases, Ti2AlC combines attractive properties of both ceramics and metals, and has...
This paper presents a detailed microstructural analysis of the crystallographic relationships betwee...
As one of the MAX phases, Ti2AlC combines attractive properties of both ceramics and metals, and has...
This paper presents a detailed microstructural analysis of the crystallographic relationships betwee...
This paper presents a detailed microstructural analysis of the crystallographic relationships betwee...
This paper presents a detailed microstructural analysis of the crystallographic relationships betwee...
Ti2AlC was predicted to bear Al-vacancy down to a sub-stoichiometry of Ti2Al0.5C. The phase instabil...
Ti2AlC was predicted to bear Al-vacancy down to a sub-stoichiometry of Ti2Al0.5C. The phase instabil...
International audienceThe substitution of Si atoms in the Ti2AlC ceramics has been observed in the T...
The structural transitions of Ti3AlC2 induced by ion irradiation were investigated over a wide fluen...
The inherently nanolaminated Ti3AlC2 is one of the most studied MAX-phase materials. MAX-phases cons...
The inherently nanolaminated Ti3AlC2 is one of the most studied MAX-phase materials. MAX-phases cons...
The present work introduced first-principles calculation to explore the substitution behavior of Ag ...
The present work introduced first-principles calculation to explore the substitution behavior of Ag ...
nhu my orm 6 D diff ase imaging reveals that the stacking sequence of Ti and Al atoms along the [000...
As one of the MAX phases, Ti2AlC combines attractive properties of both ceramics and metals, and has...
This paper presents a detailed microstructural analysis of the crystallographic relationships betwee...
As one of the MAX phases, Ti2AlC combines attractive properties of both ceramics and metals, and has...
This paper presents a detailed microstructural analysis of the crystallographic relationships betwee...
This paper presents a detailed microstructural analysis of the crystallographic relationships betwee...
This paper presents a detailed microstructural analysis of the crystallographic relationships betwee...
Ti2AlC was predicted to bear Al-vacancy down to a sub-stoichiometry of Ti2Al0.5C. The phase instabil...
Ti2AlC was predicted to bear Al-vacancy down to a sub-stoichiometry of Ti2Al0.5C. The phase instabil...
International audienceThe substitution of Si atoms in the Ti2AlC ceramics has been observed in the T...
The structural transitions of Ti3AlC2 induced by ion irradiation were investigated over a wide fluen...
The inherently nanolaminated Ti3AlC2 is one of the most studied MAX-phase materials. MAX-phases cons...
The inherently nanolaminated Ti3AlC2 is one of the most studied MAX-phase materials. MAX-phases cons...